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用于富集低分子量糖蛋白的多功能磁性纳米材料的制备

Low-molecular-weight glycoproteins (LMW-GPs) are considered promising candidates for disease biomarker discovery. Selective sorbents are essential for the extraction and enrichment of this class of compounds. Boronate affinity chromatography is a unique separation mode in liquid chromatography. It e...

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Autores principales: DOU, Peng, XIANG, Yumiao, LIANG, Liang, LIU, Zhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Editorial board of Chinese Journal of Chromatography 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9404145/
https://www.ncbi.nlm.nih.gov/pubmed/34505432
http://dx.doi.org/10.3724/SP.J.1123.2021.07019
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author DOU, Peng
XIANG, Yumiao
LIANG, Liang
LIU, Zhen
author_facet DOU, Peng
XIANG, Yumiao
LIANG, Liang
LIU, Zhen
author_sort DOU, Peng
collection PubMed
description Low-molecular-weight glycoproteins (LMW-GPs) are considered promising candidates for disease biomarker discovery. Selective sorbents are essential for the extraction and enrichment of this class of compounds. Boronate affinity chromatography is a unique separation mode in liquid chromatography. It enables the selective separation and isolation of cis-diol-containing compounds such as glycoproteins and saccharides. Recent years have witnessed the rapid development of boronate affinity materials, particularly for use as selective sorbents in proteomics and metabolomics. However, studies are scarce on the specific design of such materials for the selective extraction of LMW-GPs. Herein, we present multifunctional magnetic nanoparticles (MNPs) for selectively harvesting LWM-GPs. The multifunctional MNPs were rationally designed and prepared by wrapping magnetic core nanoparticles with a phenylboronic acid-grafted poly(acrylic acid) (PAA) network. In addition to fulfilling the primary function of conventional MNPs in magnetic separation, multifunctional MNPs can offer three pre-determined advanced functions: 1) the size-restriction effect, which enables the elimination of the interference of high-molecular-weight proteins and other species; 2) the selective extraction of LMW-GPs; and 3) protection of the harvested LMW-GPs against degradation and contamination. The multifunctional MNPs enable selective extraction due to the affinity of the boronic acid ligand to the cis-diol moieties of the glycoproteins. The size-restriction effect and protection function depend on the polymer network on the surface of the MNPs, which allows the selective passage of low-molecular-weight molecules. Transmission electron microscopy (TEM) characterization showed that the MNPs were well-shaped nanoparticles, with a diameter of approximately 60 nm. The size-restriction effect was first predicted by a thermogravimetric analysis-based theoretical calculation, where for MNPs prepared using PAA with an average molecular weight of 240 kDa, the estimated pore size of the network was 0.9 nm. The boronate affinity and size-exclusion effect were verified by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and capillary zone electrophoresis (CZE). To investigate the dependence of the selectivity of the MNPs to LMW-GPs in a complex environment and the size-restriction threshold for the PAA chain length, nano-liquid chromatography-tandem mass spectrometry (nano-LC-MS/MS) was performed to analyze the molecular mass of fragments harvested by the MNPs from the tryptic digest of horseradish peroxidase (HRP, a typical glycoprotein). The polymer chain length or the molecular weight of the PAA used played a critical role in determining the molecular weight thresholds of proteins above which the size exclusion effect will occur. The threshold values were found to be 5.0, 9.3, 4.1, 5.1, and 2.7 kDa for MNPs prepared using PAA with average molecular weights of 2, 5, 15, 100, and 240 kDa, respectively. This dependence enabled adjustment of the threshold value for inducing the size-exclusion effect of the multifunctional MNPs by changing the PAA chain length. The multifunctional MNPs can be further developed into promising nanoprobes for selectively harvesting not only LMW-GPs, but also other cis-diol-containing biomolecules of biological importance, such as nucleosides and glycans. Thus, the material preparation strategy reported herein offers new insights for the rational design and synthesis of multifunctional-affinity sorbents to selectively extract target compounds from a complex sample matrix.
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spelling pubmed-94041452022-09-14 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备 DOU, Peng XIANG, Yumiao LIANG, Liang LIU, Zhen Se Pu Articles Low-molecular-weight glycoproteins (LMW-GPs) are considered promising candidates for disease biomarker discovery. Selective sorbents are essential for the extraction and enrichment of this class of compounds. Boronate affinity chromatography is a unique separation mode in liquid chromatography. It enables the selective separation and isolation of cis-diol-containing compounds such as glycoproteins and saccharides. Recent years have witnessed the rapid development of boronate affinity materials, particularly for use as selective sorbents in proteomics and metabolomics. However, studies are scarce on the specific design of such materials for the selective extraction of LMW-GPs. Herein, we present multifunctional magnetic nanoparticles (MNPs) for selectively harvesting LWM-GPs. The multifunctional MNPs were rationally designed and prepared by wrapping magnetic core nanoparticles with a phenylboronic acid-grafted poly(acrylic acid) (PAA) network. In addition to fulfilling the primary function of conventional MNPs in magnetic separation, multifunctional MNPs can offer three pre-determined advanced functions: 1) the size-restriction effect, which enables the elimination of the interference of high-molecular-weight proteins and other species; 2) the selective extraction of LMW-GPs; and 3) protection of the harvested LMW-GPs against degradation and contamination. The multifunctional MNPs enable selective extraction due to the affinity of the boronic acid ligand to the cis-diol moieties of the glycoproteins. The size-restriction effect and protection function depend on the polymer network on the surface of the MNPs, which allows the selective passage of low-molecular-weight molecules. Transmission electron microscopy (TEM) characterization showed that the MNPs were well-shaped nanoparticles, with a diameter of approximately 60 nm. The size-restriction effect was first predicted by a thermogravimetric analysis-based theoretical calculation, where for MNPs prepared using PAA with an average molecular weight of 240 kDa, the estimated pore size of the network was 0.9 nm. The boronate affinity and size-exclusion effect were verified by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and capillary zone electrophoresis (CZE). To investigate the dependence of the selectivity of the MNPs to LMW-GPs in a complex environment and the size-restriction threshold for the PAA chain length, nano-liquid chromatography-tandem mass spectrometry (nano-LC-MS/MS) was performed to analyze the molecular mass of fragments harvested by the MNPs from the tryptic digest of horseradish peroxidase (HRP, a typical glycoprotein). The polymer chain length or the molecular weight of the PAA used played a critical role in determining the molecular weight thresholds of proteins above which the size exclusion effect will occur. The threshold values were found to be 5.0, 9.3, 4.1, 5.1, and 2.7 kDa for MNPs prepared using PAA with average molecular weights of 2, 5, 15, 100, and 240 kDa, respectively. This dependence enabled adjustment of the threshold value for inducing the size-exclusion effect of the multifunctional MNPs by changing the PAA chain length. The multifunctional MNPs can be further developed into promising nanoprobes for selectively harvesting not only LMW-GPs, but also other cis-diol-containing biomolecules of biological importance, such as nucleosides and glycans. Thus, the material preparation strategy reported herein offers new insights for the rational design and synthesis of multifunctional-affinity sorbents to selectively extract target compounds from a complex sample matrix. Editorial board of Chinese Journal of Chromatography 2021-10-08 /pmc/articles/PMC9404145/ /pubmed/34505432 http://dx.doi.org/10.3724/SP.J.1123.2021.07019 Text en https://creativecommons.org/licenses/by/4.0/本文是开放获取文章,遵循CC BY 4.0协议 https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Articles
DOU, Peng
XIANG, Yumiao
LIANG, Liang
LIU, Zhen
用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title_full 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title_fullStr 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title_full_unstemmed 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title_short 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
title_sort 用于富集低分子量糖蛋白的多功能磁性纳米材料的制备
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9404145/
https://www.ncbi.nlm.nih.gov/pubmed/34505432
http://dx.doi.org/10.3724/SP.J.1123.2021.07019
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